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驻波全内反射显微镜中的分辨率增强:一种点扩散函数工程方法。

Resolution enhancement in standing-wave total internal reflection microscopy: a point-spread-function engineering approach.

作者信息

So P T, Kwon H S, Dong C Y

机构信息

Deportment of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge 02139, USA.

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2001 Nov;18(11):2833-45. doi: 10.1364/josaa.18.002833.

Abstract

The theoretical basis for resolution enhancement in standing-wave total internal reflection microscopy (SW-TIRM) is examined. This technique relies on the formation of an excitation field containing super-diffraction-limited spatial-frequency components. Although the fluorescence generated at the object planes contains high-frequency information of the object distribution, this information is lost at the image plane, where the detection optics acts as a low-pass filter. From the perspective of point-spread-function (PSF) engineering, one can show that if this excitation field is translatable experimentally, the high-frequency information can be extracted from a set of images where the excitation fields have different displacement vectors. We have developed algorithms to combine this image set to generate a composite image with an effective PSF that is equal to the product of the excitation field and the Fraunhofer PSF. This approach can easily be extended to incorporate nonlinear excitation modalities into SW-TIRM for further resolution improvement. We theoretically examine high-resolution imaging based on the addition of two-photon, pump-probe, and stimulated-emission depletion methods to SW-TIRM and show that resolution better than 1/20 of the emission wavelength may be achievable.

摘要

本文研究了驻波全内反射显微镜(SW-TIRM)中分辨率增强的理论基础。该技术依赖于包含超衍射极限空间频率分量的激发场的形成。尽管在物平面产生的荧光包含物体分布的高频信息,但在像平面上该信息会丢失,因为检测光学器件起到了低通滤波器的作用。从点扩散函数(PSF)工程的角度来看,可以证明如果该激发场在实验上是可平移的,那么高频信息可以从一组激发场具有不同位移矢量的图像中提取出来。我们已经开发了算法来组合这组图像,以生成具有有效PSF的合成图像,该有效PSF等于激发场与夫琅禾费PSF的乘积。这种方法可以很容易地扩展,将非线性激发模式纳入SW-TIRM以进一步提高分辨率。我们从理论上研究了基于将双光子、泵浦-探测和受激辐射损耗方法添加到SW-TIRM的高分辨率成像,并表明可能实现优于发射波长1/20的分辨率。

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